利用 GO-Canada Riometer 网络对高频电离层吸收特征的空间相关性进行统计检验

IF 2.6 2区 地球科学 Q2 ASTRONOMY & ASTROPHYSICS
R. G. Gillies, E. Spanswick, S. Skone
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引用次数: 0

摘要

数十年来,分布在加拿大各地的 30 兆赫波纹计网络一直在监测极光吸收。电子析出会导致 100 千米以下的密度增大,那里较高的中性密度会导致高频(HF)信号的吸收。由于辐射计监测点之间的距离很远,因此对D区吸收进行精确建模具有挑战性。有兴趣了解这些区域的典型尺度大小,以便在电离层模型中进行同化。利用全球海洋观测系统加拿大分部的整个波纹仪网络,可以监测极光吸收事件在广阔的多层膜层区的发展情况。通过研究各站点之间的相关性,可以估算出吸收区域的规模大小。研究发现,吸收区在带状方向上的大小约为 900 公里。相反,经向吸收区的特征尺度大小为 700 千米。这些结果符合一般的磁层结构,即高能电子主要存在于夜侧过渡区和环流。这造成了纬度相关性的自然限制,而经度上的差异可能与 MLT 中降水区域的大小有关。我们的结果还显示,从几百公里到几千公里的两个方向上的尺度大小都有很大的差异。 在本文中,我们从观测到的高能电子沉淀时空尺度的趋势方面总结了这些结果,并讨论了将这些尺度与磁层驱动因素联系起来的未来工作。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A Statistical Examination of the Spatial Correlations of HF Ionospheric Absorption Signatures Using the GO-Canada Riometer Network

A Statistical Examination of the Spatial Correlations of HF Ionospheric Absorption Signatures Using the GO-Canada Riometer Network

A network of 30-MHz riometers distributed across Canada have been monitoring auroral absorption for decades. Electron precipitation can cause enhanced densities to develop below ∼100 km where the higher neutral density can cause absorption of High Frequency (HF) signals. Modeling D-region absorption accurately can be challenging due to the large distances between riometer monitoring sites. It is of interest to develop an understanding of the typical scale sizes of these regions for assimilation in ionospheric models. Using the entire network of GO-Canada riometers, auroral absorption events may be monitored as they develop through a wide MLT sector. By examining correlations between sites, proxies for the scale sizes of absorption regions may be estimated. It was found that the sizes of the absorbing regions in the zonal direction are on the order of 900 km. Conversely, the characteristic scale sizes of the regions in the meridional direction were ∼700 km. These results are consistent with the general magnetospheric structure which sees higher energy electrons primarily present in the nightside transition region, and ring current. This creates a natural limit in latitudinal correlations, while the spread in longitude is likely connected to the size of precipitation regions in MLT. Our results also show significant spread in scale sizes in both directions from a few hundred to several thousand km. In this paper, we summarize these results in terms of the observed trends in high energy electron precipitation spatial and temporal scales and discuss future work to connect these scales to magnetospheric drivers.

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来源期刊
Journal of Geophysical Research: Space Physics
Journal of Geophysical Research: Space Physics Earth and Planetary Sciences-Geophysics
CiteScore
5.30
自引率
35.70%
发文量
570
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